A compound motion cutting device for cutting a work piece includes a tubular member having first and second ends, a pair of operating members and a drive rod having first and second ends and extending longitudinally into the tubular member. One of the operating members is secured to the first end of the tubular member and the first end of the drive rod is secured to the other of the operating members. An anvil is supported proximate the second end of the tubular member and includes a surface for supporting the work piece and a slot extending through the support surface. A cutting member includes a first end pivotally attached to the second end of the drive rod and a cam slot extending laterally therethrough. A pin is supported proximate the second end of the tubular member an extends through the cam slot in the cutting member. Movement of the operating members relative to each other in one direction causes the drive rod to move the cutting member in a first longitudinal direction and the pin and cutting member cam slot cooperate to simultaneously rotate the cutting member toward the anvil and to extend at least partially into the anvil slot to cut the work piece with a combined longitudinal and rotational slicing motion.

Patent
   5431674
Priority
Sep 07 1993
Filed
Sep 07 1993
Issued
Jul 11 1995
Expiry
Sep 07 2013
Assg.orig
Entity
Large
307
18
EXPIRED
14. A compound motion cutting device comprising:
a support member;
an anvil supported by the support member, the anvil having a predetermined configuration including a surface for supporting a work piece and a slot extending through the support surface;
a cutting member aligned with the anvil slot and including a cam slot with a predetermined profile extending laterally therethrough; and
a pin supported by the support member, the pin extending through the cam slot in the cutting member,
whereby longitudinal movement of the cutting member in a first direction relative to the support member results in the pin and the cutting member cam slot cooperating to cause the cutting member in a rotate toward the anvil and to extend at least partially into the anvil slot to cut the work piece at a predetermined cutting angle relative to the anvil surface with a combined longitudinal and rotational slicing motion.
1. A compound motion cutting device comprising:
(a) a tubular member having first and second ends;
(b) a pair of operating members movable relative to each other, one of the operating members being secured to the first end of the tubular member;
(c) a drive rod having first and second ends and extending longitudinally into the tubular member, the first end of the rod being secured to the other of the operating members such that movement of the operating members relative to each other causes the rod to move longitudinally within the tubular member;
(d) an anvil supported proximate the second end of the tubular member, the anvil having a predetermined configuration including a surface for supporting a work piece and a slot extending through the support surface;
(e) a cutting member having first and second ends, the first end of the cutting member being pivotally attached to the second end of the drive rod for movement therewith, the cutting member being aligned with the anvil slot and including a cam slot with a predetermined profile extending laterally therethrough; and
(f) a pin supported proximate the second end of the tubular member, the pin extending through the cam slot in the cutting member,
whereby movement of the operating members relative to each other in one direction causes the drive rod to move in a first longitudinal direction within the tubular member toward the operating members, the movement of the drive rod in the first direction causing the cutting member to move in the first direction, the pin and the cutting member cam slot cooperating to cause the cutting member to simultaneously rotate toward the anvil and to extend at least partially into the anvil slot to cut the work piece at a predetermined cutting angle relative to the anvil surface with a combined longitudinal and rotational slicing motion.
2. The cutting device as set forth in claim 1, whereby the cutting member comprises a gripping member and a blade having a predetermined configuration, the blade being releasably secured to the gripping member.
3. The cutting device as set forth in claim 2, wherein the anvil surface is provided with a retention element for retaining the work piece on the support surface and for preventing the work piece from being pulled into the anvil slot by the blade when the blade moves at least partially into the anvil slot to cut the work piece.
4. The cutting device as set forth in claim 3, wherein the retention element is a supporting toothed surface.
5. The cutting device as set forth in claim 3, wherein the retention element is a releasable adhesive on the support surface.
6. The cutting device as set forth in claim 2, wherein the blade is of a predetermined lateral thickness and the lateral width of the anvil slot is greater than the predetermined blade thickness.
7. The cutting device as set forth in claim 6, wherein the cutting member cam slot has a curved profile.
8. The cutting device as set forth in claim 7, wherein the curved cam slot comprises first and second sections, the first section having a first predetermined curvature and the second section having a second predetermined curvature greater than the first predetermined curvature.
9. The cutting device as set forth in claim 8, wherein the movement of the cutting member and the predetermined cutting angle is determined by at least one of the relative movement of the operating members, the location of the pivotal attachment between the first end of the cutting member and the second end of the drive rod, the cutting member cam slot profile, the configuration of the anvil and the configuration of the blade.
10. The cutting device as set forth in claim 1, wherein the cutting member cam slot has a curved profile.
11. The cutting device as set forth in claim 10, wherein the curved cam slot comprises first and second sections, the first section having a first predetermined curvature and the second section having a second predetermined curvature greater than the first predetermined curvature.
12. The cutting device as set forth in claim 2, wherein the blade comprises a first electrode and the anvil includes a second electrode such that upon attachment to a bipolar generator, the cutting device may be employed as a bipolar cutter or coagulator.
13. The cutting device as set forth in claim 12, wherein the second electrode comprises a pair of conductive strips supported on the anvil surface on both lateral sides of the anvil slot.

The present invention relates generally to cutting instruments and, more particularly,, to a compound motion cutting device particularly well adapted for cutting body tissue in areas of limited access.

Cutting devices are well known in the art. Such devices (scissors, punches, graspers) are generally used in surgery to cut through body tissue in areas of limited access. Conventional surgical scissors are limited by the singular rotational motion of the blades allowing only a shearing action to cut tissue. As a result, there is a tendency for tissue to roll due to the separation of the scissor blades. The blade separation thus impedes cutting and can lead to tissue tearing.

Efforts have been made to solve the aforementioned problems by producing surgical scissors which use a preload on the blades to prevent tissue roll induced by blade separation. The force required to overcome such preloads is frequently greater than the force required to perform a cut. This causes tactile feedback from the actual cutting to fall well below the perception threshold of a surgeon or other user.

Another disadvantage of conventional surgical scissors is that the blades rub against each other resulting in metal against metal blade edge wear. As a result, over time, the blades get dull and must be sharpened or discarded. Efforts have also been made to solve the wear problem of conventional surgical scissor parts by increasing the dimensions of selected parts of the surgical scissors to increase part strengths. However, such efforts have been wholly unsuccessful, in as much as the increased dimensions tend to render the instruments less satisfactory for use in confined spaces.

The present invention overcomes many of the disadvantages inherent in the above-described prior art surgical cutting devices by providing a compound motion cutting device designed to effect a cutting action which is a combination of shearing and cutting, rather than shearing alone, resulting in a slicing motion that more closely approximates the motion of a surgeon's scalpel. The present invention employs a single blade compound motion cutting device including an anvil having a support surface for a work piece with a slot which provides clearance for the blade so that rolling of the work piece as it is being cut is prevented and blade edge wear is avoided to maintain blade sharpness.

The compound motion cutting device of the present invention offers significant improvement in tactile feedback over conventional cutting devices by minimizing blade preload and lowering frictional forces found in conventional steel against steel blades with equal preload. The cutting device of the present invention employs parts which are relatively small in size and are able to function well in confined areas of limited access.

Briefly stated, the present invention comprises a compound motion cutting device including a tubular member having first and second ends and a pair of operating members movable relative to each other. One of the operating members is secured to the first end of the tubular member. A drive rod having first and second ends extends longitudinally into the tubular member. The first end of the rod is secured to the other of the operating members such that movement of the operating members relative to each other causes the rod to move longitudinally within the tubular member. An anvil is supported proximate the second end of the tubular member and has a surface for supporting a work piece and a slot extending through the support surface. A cutting member has first and second ends and includes a cam slot extending laterally therethrough. The first end of the cutting member is pivotally attached to the second end of the drive rod and the cutting member is aligned with the anvil slot. A pin is supported proximate to the second end of the tubular member and extends through the cam slot in the cutting member. Movement of the operating members relative to each other in one direction causes the drive rod to move in a first longitudinal direction within the tubular member toward the operating members. The movement of the drive rod in the first direction causes the cutting member to move in the first direction, the pin and the cutting member cam slot cooperating to cause the cutting member to simultaneously rotate toward the anvil and to extend at least partially into the anvil slot to cut the work piece with a combined longitudinal and rotational slicing motion.

The foregoing summary, as well as the following detailed description of preferred embodiments of the invention, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:

FIG. 1 is a perspective view of a conventional prior art surgical cutting device;

FIG. 1A illustrates rolling of a work piece and blade separation as a result of cutting the work piece with the prior art cutting device of FIG. 1;

FIG. 2 is a perspective view of a compound motion cutting device in accordance with a preferred embodiment of the present invention;

FIG. 3 is an exploded perspective view of the compound motion cutting device shown in FIG. 2;

FIG. 4 is an enlarged perspective view of the cutting end of the compound motion cutting device shown in FIG. 2;

FIG. 5 is a side elevational view of the cutting device shown in FIG. 2 illustrating, in cross-section, the cutting member in the open and closed positions;

FIG. 6 is a side elevational view of the cutting device as shown in FIG. 2 illustrating, in cross-section, the cutting member in the open position; and

FIG. 7 is an enlarged perspective view of a second preferred embodiment of the compound motion cutting device in accordance with the present invention.

While this invention is susceptible of embodiments in many different forms, this specification and the accompanying drawings disclose only some specific forms as examples of the use of the invention. The invention is not intended to be limited to the embodiment so described, and the scope of the invention will be pointed out in the appended claims.

Referring now to the drawings in detail, wherein like numerals are used to indicate like elements throughout, there is shown in FIGS. 1 and 1A is a prior art surgical cutting device, generally designated at 10, for cutting a work piece 12. The prior art cutting device 10 includes blades 14, 16 connected at a pivot point 18.

In discussing the prior art cutting device (FIGS. 1, 1A) and the preferred embodiment of the present invention described below, the work piece 12 refers to body tissue, such as vessels, cartilage, or a portion of an organ. The types of work pieces cut by surgical and non-surgical cutting instruments, however, are well known by those skilled in the art. Accordingly, the subject matter which is to be cut is herein referred to only as a work piece and any further description thereof is omitted for purposes of convenience and is not to be considered as limiting.

As stated above, a disadvantage associated with the prior art cutting device 10 shown in FIG. 1 is that it is limited by the singular relative rotational motion of the blades 14, 16. Thus, the cutting motion of the cutting device 10 cannot approximate the slicing motion of a surgeon's scalpel.

As shown in FIG. 1A, a result of the above-mentioned disadvantage is that there is a tendency for the work piece 12 to roll as is generally designated at 20. As the blades 14, 16 are pivoted about pivot point 18 (FIG. 1), the independent input forces F applied by each blade 14, 16, respectively, causes the work piece 12 to roll as indicated by arrow 22. The rolling of the work piece 12, in turn forces the blades 14, 16 to separate as generally designated at 24. Such blade separation impedes straight cutting and can lead to tearing of the work piece 12.

Some conventional surgical cutting devices also use large preloads on the blades to prevent rolling of the work piece which induces blade separation. The force required to overcome such preloads is frequently much greater than the force required to cut. This causes tactile feedback from cutting to fall well below a surgeon's perception threshold.

Referring now to FIGS. 2-6, there is shown a first preferred embodiment of the compound motion cutting device, generally designated 26, in accordance with the present invention. As shown in FIG. 2, the compound motion cutting device 26 comprises an elongated center portion generally designated 28, a cutting end generally designated 30, and an operating end generally designated 32.

Referring now to FIGS. 2 and 3, the center portion 28 comprises a generally elongated tubular support member 34 having first and second ends 36, 38. A tubular insulator 40 is disposed around the tubular member 34. The first end 36 of the tubular member 34 includes a flange or detent 41 for inhibiting relative rotation of the tubular member 34 with respect to the operating end 32 as further described below. A drive rod 42 having first and second ends 44, 46 extends longitudinally into the tubular member 34 and extends slightly beyond each end 36, 38 of the tubular member 34.

In the present embodiment, the tubular member 34 is preferably formed of a high strength light weight material or structure, such as aluminum, steel, or a high strength polymer, the drive rod 42 is preferably formed of a similar material and the insulator 40 is formed of an electrical insulating material such as a shrink wrap plastic. However, it is understood by those skilled in the art that other materials and fabrication methods for the tubular member 34, the drive rod 42 and the insulator 40 are suitable. For example, the tubular member 34 could be injection molded from a suitable polymeric material, such as a hard plastic, the drive rod 42 could be formed of a high strength aluminum alloy or stainless steel and the insulator 40 could be injection molded from an electrically insulating plastic material such as polypropylene or polycarbonate.

As shown in FIG. 3, the operating end 32 preferably comprises a pair of handles or operating members 48, 50 of a type well known in the art and which are movable relative to each other about a common pivot point 52. First or distal ends of the operating members 48, 50 are provided with finger loops 54, 56, respectively, for receiving the finger of a user in a manner well known in the art. The second ends of the operating members 48, 50 are provided with connecting portions 58, 60, respectively. Preferably, the connecting portion 60 comprises a generally rectangular base member 62 having a slotted opening 63 fixed to the second end of the operating member 48. Preferably, the connecting portion 60 comprises a U-shaped groove 63a formed integrally with the second end of the operating member 50. However, it is understood by those skilled in the art that other forms of connecting portions 58, 60 are suitable for the second ends of the operating members 48, 50, respectively.

In the present embodiment, the operating end 32 is preferably formed of a high strength light weight material, such as aluminum, steel, or a high strength polymer. However, it is understood by those skilled in the art that other materials which provide for a rigid operating end structure could be used without departing from the spirit and scope of the invention. It is also understood that operating members 48, 50 could be pivoted with a pivoting pin without intersecting with each other. Additionally, the operating end 32 may be of the type disclosed in U.S. Pat. Nos. 4,712,545, 4,896,678, 5,152,780, 5,171,256 which are hereby incorporated by reference.

As best shown in FIG. 3, the first end 36 of the tubular member 34 and a corresponding end portion of the insulator 40 preferably extend longitudinally into the slotted opening 63 of the base member 62 with a tight fit. A suitable adhesive may be used to secure the tubular member 34 to the base member 62. The detent 41 preferably protrudes transversely from the slotted opening 63 and cooperates with the opening 63 to prevent relative rotation between the tubular member 34 and the base member 62. However, it is understood by those skilled in the art that other forms of connections, such as a press fit or a crimping connection, which would prevent relative rotation between the tubular member 34 and the base member 62, could be used without departing from the spirit and scope of the invention.

The drive rod 42 extends through the tubular member 34 with sufficient clearance to permit relative longitudinal movement therein. The first end 44 of the drive rod 42 also extends through the slotted opening 63 and into the U-shaped groove 63a to permit relative longitudinal movement therein. A retaining member 47 on the first end 44 of the rod secures the first end 44 of the drive rod 42 to the second end of the operating member 50. Preferably, the retaining member 47 is an oversized pin formed integrally with or secured to the first rod end 44. However, it is understood by those skilled in the art that any other means suitable for retaining the first rod end 44 to operating member 50 may be employed.

Referring now to FIGS. 3-6, the cutting end 30 according to the present embodiment comprises an anvil 64 supported proximate the second end 38 of the tubular member 34 and a cutting member generally designated 66. The anvil 64 according to the present embodiment is best described with reference to FIGS. 4-6. The anvil 64 preferably comprises a first end 68 secured to or integral with the second end 38 of the tubular member 34 and a second or distal end 70. The anvil 64 further includes a generally flat support surface 74 for supporting a work piece (not shown) to be cut. The first anvil end 68 includes a longitudinal groove 76 defined by two generally parallel sidewalls 78, 80 supporting a laterally extending generally cylindrical shaped pin 82. An elongated slot 72 extends generally longitudinally through the support surface 74.

Preferably, the anvil 64 is injection molded as a separate piece from a high strength polymer which can be secured to the second end 38 of the tubular member 34 during assembly with a friction fit, a snap-fit, a suitable adhesive or some other type of standard hardware. However, it is understood by those skilled in the art that other materials and fabrication methods are suitable for the anvil 64. For example, the anvil 64 could be formed integrally with the tubular member 34. Additionally, the anvil 64 could be injection molded from a transparent or translucent plastic material, such as acrylic, polycarbonate or crystal styrene, for improving visibility of a work piece being cut as further described below.

According to the present embodiment, the anvil support surface 74 is provided with a retention element for retaining a work piece (not shown) on the anvil surface 74 and preventing the work piece from being pulled into the anvil slot 72 by the cutting member 66 as further described below. Preferably, the retention element is a supporting toothed surface 75. However, it is understood by those skilled in the art that other types of retention elements, such as a releasable adhesive, which holds the work piece in place on the support surface 74 and prevents the work piece from being pulled into the anvil slot 72 could be used without departing from the spirit and scope of the invention. Alternatively, the support surface 74 could be a smooth flat surface.

As best shown in FIGS. 5 and 6, the cutting member 66 according to the present embodiment comprises a first end 84 and a second end 86. The first end 84 is pivotally attached by a retaining member 47 to the drive rod second end 46 and extends longitudinally into the groove 76 proximate the first end 68 of the anvil 64. The cutting member 66 is aligned with the anvil slot 72. A gripping member 90 extends from the first end 84 to the second end 86 of the cutting member 66. The gripping member 90 releasably secures a blade 92 at the second end 86 and is pivotally attached to the retaining member 47 at the first end 84.

Preferably, an opening 94 extends through the gripping member 90 at the first end 82 and the retaining member 47 is in the form of a pin in snap fit connection with the opening 94 to define a pivot joint 95 between the gripping member 90 and the second end 46 of the drive rod 42. However, it is understood by those skilled in the art that other forms of pivotal connections which allow relative pivoting between the gripping member 90 and the drive rod second end 46 are suitable. It also understood by those skilled in the art that the location of the pivot joint 95 could be varied along the gripping member 90 at the second end 86 of the cutting member 66 and/or along the drive rod second end 46 in order to adjust the motions of the blade 92 and the related cutting angles with respect to a work piece being cut.

Preferably, the gripping member 90 is channel-shaped in cross-section and the blade 92 includes a cutting edge 96 and a non-cutting edge 98 releasably secured within the channel of the gripping member 90 with a press fit. However, it is understood by those skilled in the art that other forms of connections between the gripping member 90 and blade 92 are suitable. For example, the blade 92 could be releasably secured to the channel of the gripping member 90 with a releasable adhesive or standard hardware, such that the blade 92 may be readily replaced, without departing from the spirit and scope of the invention. Additionally, the gripping member 90 need not be channel-shaped in cross-section, but could instead be planar in shape with opposite sides and the non-cutting edge 98 of the blade 92 could be releasably secured to a side of the gripping member 90 with any of the above-described forms of connections.

Preferably, the blade 92 is a thin generally straight edged blade having a predetermined thickness and the anvil slot 72 has a width which is at least slightly greater than the predetermined thickness of the blade 92 providing minimal clearance for the blade 92 as the blade moves at least partially into the anvil slot 72 (FIG. 5) during a cutting operation as further described below. Thus, blade preload friction is substantially reduced over prior art cutting devices, resulting in optimal cutting performance and tactile feedback. However, it is understood by those skilled in the art that other configurations are suitable for the blade 92. For example, the blade 92 could be other than a straight edged blade, such as a curve edged blade, for the purpose of adjusting the cutting motions of the blade 92 and the related work piece cutting angles for specific applications.

Preferably, the gripping member 90 is formed of aluminum, steel, or a high strength polymer and the blade 92 is formed of a suitable metal, such as stainless steel. However, it is understood by those skilled in the art that other materials are suitable for the gripping member 90 and blade 92. For example, the gripping member could be injection molded from a suitable polymeric material as described above for the anvil 64 and the blade 92 could be formed of aluminum.

Referring now to FIGS. 5 and 6, the cutting member 66 of the present embodiment further includes a slot 100 having a predetermined profile and extending laterally through the gripping member 90. Preferably, the profile of the slot 100 is cammed, including first and second sections 102, 104 defining first, second and third pin positions 106, 108, 110, respectively. The pin 82, located within the groove 76 of the anvil 64, extends through the cam slot 100 and has an outer diameter at least slightly less than the predetermined width of the cam slot 100. In this manner the cutting member 66 can be translated in a longitudinal direction relative to the tubular member 34 to position the pin 82 from the first position 106, through the second position 108 to the third position 110 as further described below. It is also preferred that the first section 102 have a first predetermined curvature and the second section 104 have a second predetermined curvature which is greater or steeper than the first predetermined curvature. However, it is understood by those skilled in the art that other profiles are suitable for the slot 100. For example, the slot 100 could comprise only a single section with a continuous curvature or more than one section with identical or different curvatures. It is also understood by those skilled in the art that the number of curve sections within the slot 100 and the respective degree of curvatures of the sections may be adjusted in order to achieve varying degrees of blade motion and related cutting angles for specific applications.

The operation of the compound motion cutting device 26 of the present embodiment will be described with reference to FIGS. 2-6. When the finger loops 54, 56 are moved toward each other (not shown), the drive rod 42 is moved in a first, rearward, longitudinal direction within the tubular member 34 towards the operating end 32. The movement of the drive rod 42 in the first direction causes the cutting member 66 to also move in the first direction and the pin 82 to traverse the cam slot 100 from the first position 106, through the second position 108 to the third position 110 thereby causing the cutting member 66 to simultaneously rotate toward the anvil 64 and to extend at least partially into the anvil slot 72 (FIG. 5) to cut a work piece (not shown) positioned on the anvil support surface 74 with a combined longitudinal and a rotational slicing motion. Thus, the cutting device of the present embodiment effects a more efficient slicing motion over prior art cutting devices that more closely approximates the motion of a surgeon's scalpel.

When the finger loops 54, 56 of the operating members 48, 50, respectively, are subsequently spread apart (FIG. 2), the drive rod 42 is moved in an opposite, second longitudinal direction within the tubular member 34 away from the operating end 32. The movement of the drive rod 42 causes the cutting member 66 to move in the second longitudinal direction and the pin 82 to traverse the cam slot 100 from the third position 110, through the second position 108 to the first position 106 to cause the cutting member 66 to rotate away from the anvil 64 and out of the anvil slot 72. The compound motion cutting device 26 is then ready for another slicing operation by repeating the above-mentioned steps.

It is understood by those skilled in the art and from the above description of a preferred first embodiment of the present invention that the motion of the blade 92 and related cutting angle may be determined and adjusted by one of the following independent variables in order to achieve specific cutting applications: (1) the relative movement of the operating members 48, 50; (2) the location of the pivot joint 95 relative to the cutting member 66; (3) the profile of the cam slot 100; (4) the configuration of the blade 92; and (5) the configuration of the anvil 64.

A compound motion cutting device according to a second embodiment, as shown in FIG. 7, includes the essential elements of the compound motion cutting device previously described with reference to FIGS. 2-6. However, the cutting device of the second embodiment is a bipolar single bladed design adapted for electrocautery and microcautery surgical operations as further described below.

As shown in FIG. 7, the blade 92 of the second embodiment constitutes a first electrode, with a size and shape which can be varied to meet particular surgical requirements. For example, microcautery requires the first electrode 92 to be very thin. The gripping member 90, the drive rod 42 and the tubular member 34 are preferably formed from a suitable electrically insularire material, such as a polymer. However, it is understood by those skilled in the art that other materials which are not electrically conductive, are suitable.

In the present embodiment, the anvil support surface 74 is provided with a pair of elongated strips 112, which separately or together defining a second electrode. The anvil 64 is preferably made of a suitable, high strength polymer with inherent insulation characteristics, such as a hard plastic. However, it is understood by those skilled in the art that other materials with insulation characteristics, such as polypropylene or polycarbonate, are suitable for the anvil 68. The strips 112 may be made of any of the electrically conductive materials discussed above with reference to the first electrode 92.

In the present embodiment, electrical current is delivered to the first and second electrodes 92, 112 through electrical leads (not shown) preferably running through the tubular member 34. The electrical leads are connected to an appropriate bipolar cutter/coagulator device (not shown). Details of the electrical leads and bipolar cutter/coagulator device are not pertinent to the present invention and are well understood by those skilled in the art. Accordingly, further description thereof is omitted for purposes of convenience only and is not limiting.

The operation of the compound motion cutting device according to the second embodiment is essentially the same as the operation described above with reference to FIGS. 2-6. However, in addition to physical cutting, the electrodes 92, 112 function with the bipolar cutter/coagulator device to provide electrical cutting and/or coagulation as deemed by a user.

From the foregoing description, it can be seen that the present invention comprises an improved compound motion cutting device. It will be appreciated by those skilled in the art, that changes could be made to the embodiments described in the foregoing description without departing from the broad inventive concept thereof. It is understood, therefore, that this invention is not limited to the particular embodiment disclosed, but is intended to cover all modifications which are within the scope and spirit of the invention as defined by the appended claims.

Basile, Peter A., Clark, George A., Brown, Scott C.

Patent Priority Assignee Title
10085794, May 07 2009 Covidien LP Apparatus, system and method for performing an electrosurgical procedure
10149713, May 16 2014 Applied Medical Resources Corporation Electrosurgical system
10188452, Aug 19 2005 Covidien AG Single action tissue sealer
10213250, Nov 05 2015 Covidien LP Deployment and safety mechanisms for surgical instruments
10231777, Aug 26 2014 Covidien LP Methods of manufacturing jaw members of an end-effector assembly for a surgical instrument
10251696, Apr 06 2001 Covidien AG Vessel sealer and divider with stop members
10265121, Apr 06 2001 Covidien AG Vessel sealer and divider
10278772, Jun 13 2003 Covidien AG Vessel sealer and divider
10342604, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
10383649, Feb 22 2012 Covidien LP Trigger lockout and kickback mechanism for surgical instruments
10420603, Dec 23 2014 Applied Medical Resources Corporation Bipolar electrosurgical sealer and divider
10441350, Nov 17 2003 Covidien AG Bipolar forceps having monopolar extension
10537384, Oct 04 2002 Covidien LP Vessel sealing instrument with electrical cutting mechanism
10568682, Apr 06 2001 Covidien AG Vessel sealer and divider
10631918, Aug 14 2015 Covidien LP Energizable surgical attachment for a mechanical clamp
10646267, Aug 07 2013 Covidien LP Surgical forceps
10687887, Apr 06 2001 Covidien AG Vessel sealer and divider
10792060, Mar 14 2017 Gyrus ACMI, Inc. Instrument with a controlled jaw movement
10792092, May 30 2014 Applied Medical Resources Corporation Electrosurgical seal and dissection systems
10835279, Mar 14 2013 THE SPECTRANETICS CORPORATION Distal end supported tissue slitting apparatus
10835309, Jun 25 2002 Covidien AG Vessel sealer and divider
10842553, Jun 13 2003 Covidien AG Vessel sealer and divider
10849681, Apr 06 2001 Covidien AG Vessel sealer and divider
10856933, Aug 02 2016 Covidien LP Surgical instrument housing incorporating a channel and methods of manufacturing the same
10874452, Oct 01 2010 Applied Medical Resources Corporation Electrosurgical instruments and connections thereto
10881453, Apr 06 2001 Covidien AG Vessel sealer and divider
10888371, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
10918407, Nov 08 2016 Covidien LP Surgical instrument for grasping, treating, and/or dividing tissue
10918435, Jun 13 2003 Covidien AG Vessel sealer and divider
10918436, Jun 25 2002 Covidien AG Vessel sealer and divider
10987159, Aug 26 2015 Covidien LP Electrosurgical end effector assemblies and electrosurgical forceps configured to reduce thermal spread
10987160, Oct 04 2002 Covidien AG Vessel sealing instrument with cutting mechanism
11090050, Sep 03 2019 Covidien LP Trigger mechanisms for surgical instruments and surgical instruments including the same
11166759, May 16 2017 Covidien LP Surgical forceps
11382686, Jul 22 2015 Covidien LP Surgical forceps
11540871, Dec 23 2014 Applied Medical Resources Corporation Bipolar electrosurgical sealer and divider
11660108, Jan 14 2011 Covidien LP Trigger lockout and kickback mechanism for surgical instruments
11660136, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
11672589, May 16 2014 Applied Medical Resources Corporation Electrosurgical system
11696796, Nov 16 2018 Applied Medical Resources Corporation Electrosurgical system
11793520, Sep 03 2019 Covidien LP Trigger mechanisms for surgical instruments and surgical instruments including the same
11864812, Sep 05 2018 Applied Medical Resources Corporation Electrosurgical generator control system
11864823, Oct 01 2010 Applied Medical Resources Corporation Electrosurgical instruments and connections thereto
5569299, Mar 01 1995 Symbiosis Corporation Endoscopic urological biopsy forceps
5700261, Mar 29 1996 Ethicon Endo-Surgery, Inc. Bipolar Scissors
5702390, Mar 12 1996 Ethicon Endo-Surgery, Inc Bioplar cutting and coagulation instrument
6019780, Dec 17 1996 ASPEN SURGICAL PRODUCTS, INC Dual pin and groove pivot for micro-instrument
6050996, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar electrosurgical instrument with replaceable electrodes
6059776, Sep 23 1997 Electrosurgical laser shears
6090109, Nov 14 1997 Sherwood Services AG Laparoscopic bipolar electrosurgical instrument
6102909, Aug 26 1997 Ethicon, Inc Scissorlike electrosurgical cutting instrument
6152923, Apr 28 1999 Covidien AG; TYCO HEALTHCARE GROUP AG Multi-contact forceps and method of sealing, coagulating, cauterizing and/or cutting vessels and tissue
6187003, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar electrosurgical instrument for sealing vessels
6228083, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
6267761, Sep 09 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Apparatus and method for sealing and cutting tissue
6277117, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing forceps with disposable electrodes
6334861, Sep 10 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Biopolar instrument for vessel sealing
6358249, Aug 26 1997 Ethicon, Inc. Scissorlike electrosurgical cutting instrument
6361534, Aug 26 1997 Ethicon, Inc. Electrosurgical cutting instrument
6364879, Aug 26 1997 Ethicon, Inc. Electrosurgical cutting instrument
6451018, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
6458130, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Endoscopic bipolar electrosurgical forceps
6511480, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing forceps with disposable electrodes
6585735, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Endoscopic bipolar electrosurgical forceps
6599309, Sep 09 1999 ASPEN SURGICAL PRODUCTS, INC Pin-less surgical instrument
6682528, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Endoscopic bipolar electrosurgical forceps
6726686, Nov 12 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Bipolar electrosurgical instrument for sealing vessels
6869439, Sep 19 1996 United States Surgical Corporation; Misonix, Inc. Ultrasonic dissector
6887240, Sep 19 1995 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealing wave jaw
6932810, Sep 09 1997 Sherwood Services AG Apparatus and method for sealing and cutting tissue
6960210, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
6976992, Jul 16 2002 SutureCut, LLC Dual-function medical instrument
7033354, Dec 10 2002 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical electrode having a non-conductive porous ceramic coating
7083618, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider
7090673, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer and divider
7101371, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider
7101372, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer and divider
7101373, Apr 06 2001 U S BANK NATIONAL ASSOCIATION, AS COLLATERAL AGENT Vessel sealer and divider
7103947, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Molded insulating hinge for bipolar instruments
7118570, Oct 22 1999 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing forceps with disposable electrodes
7118587, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer and divider
7131970, Nov 19 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing instrument with cutting mechanism
7131971, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider
7135020, Nov 12 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical instrument reducing flashover
7147638, May 01 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical instrument which reduces thermal damage to adjacent tissue
7150097, Jun 13 2003 Covidien AG; TYCO HEALTHCARE GROUP AG Method of manufacturing jaw assembly for vessel sealer and divider
7150749, Jun 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider having elongated knife stroke and safety cutting mechanism
7156846, Jun 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider for use with small trocars and cannulas
7160298, Nov 12 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical instrument which reduces effects to adjacent tissue structures
7160299, May 01 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Method of fusing biomaterials with radiofrequency energy
7179258, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar electrosurgical instrument for sealing vessels
7195631, Sep 09 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Forceps with spring loaded end effector assembly
7207990, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
7223265, Dec 10 2002 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical electrode having a non-conductive porous ceramic coating
7232440, Nov 17 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar forceps having monopolar extension
7241296, Nov 12 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Bipolar electrosurgical instrument for sealing vessels
7252667, Nov 19 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing instrument with cutting mechanism and distal lockout
7255697, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider
7267677, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7270660, Sep 09 1997 Sherwood Services AG Apparatus and method for sealing and cutting tissue
7270664, Oct 04 2002 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument with electrical cutting mechanism
7276068, Oct 04 2002 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument with electrical cutting mechanism
7329256, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7367976, Nov 17 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar forceps having monopolar extension
7377920, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
7384420, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer and divider
7384421, Oct 06 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Slide-activated cutting assembly
7435249, Nov 12 1997 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical instruments which reduces collateral damage to adjacent tissue
7442193, Nov 20 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Electrically conductive/insulative over-shoe for tissue fusion
7442194, Nov 17 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar forceps having monopolar extension
7445621, Nov 17 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar forceps having monopolar extension
7458972, Dec 10 2002 Covidien AG; TYCO HEALTHCARE GROUP AG Electrosurgical electrode having a non-conductive porous ceramic coating
7473253, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider with non-conductive stop members
7481810, Nov 17 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar forceps having monopolar extension
7491201, May 15 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Tissue sealer with non-conductive variable stop members and method of sealing tissue
7491202, Mar 31 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical forceps with slow closure sealing plates and method of sealing tissue
7500975, Nov 19 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Spring loaded reciprocating tissue cutting mechanism in a forceps-style electrosurgical instrument
7510556, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7513898, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7540872, Sep 21 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Articulating bipolar electrosurgical instrument
7553312, Mar 10 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7559940, Dec 18 2002 Smith & Nephew, Inc Surgical biting punch
7582087, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument
7594916, Nov 22 2005 Covidien AG Electrosurgical forceps with energy based tissue division
7597693, Jun 13 2003 Covidien AG Vessel sealer and divider for use with small trocars and cannulas
7628791, Aug 19 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Single action tissue sealer
7628792, Oct 08 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Bilateral foot jaws
7641653, May 04 2006 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing forceps disposable handswitch
7655007, May 01 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Method of fusing biomaterials with radiofrequency energy
7686804, Jan 14 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider with rotating sealer and cutter
7686827, Oct 21 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Magnetic closure mechanism for hemostat
7708735, May 01 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Incorporating rapid cooling in tissue fusion heating processes
7722607, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG In-line vessel sealer and divider
7744615, Jul 18 2006 TYCO HEALTHCARE GROUP AG; Covidien AG Apparatus and method for transecting tissue on a bipolar vessel sealing instrument
7753909, May 01 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical instrument which reduces thermal damage to adjacent tissue
7766910, Jan 24 2006 Covidien LP Vessel sealer and divider for large tissue structures
7771425, Jun 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider having a variable jaw clamping mechanism
7776036, Mar 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar concentric electrode assembly for soft tissue fusion
7776037, Jul 07 2006 TYCO HEALTHCARE GROUP AG; Covidien AG System and method for controlling electrode gap during tissue sealing
7789878, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG In-line vessel sealer and divider
7799026, Nov 14 2002 TYCO HEALTHCARE GROUP AG; Covidien AG Compressible jaw configuration with bipolar RF output electrodes for soft tissue fusion
7799028, Sep 21 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Articulating bipolar electrosurgical instrument
7811283, Nov 19 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing instrument with hourglass cutting mechanism and over-ratchet safety
7819872, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Flexible endoscopic catheter with ligasure
7828798, Nov 14 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Laparoscopic bipolar electrosurgical instrument
7837685, Jul 13 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Switch mechanisms for safe activation of energy on an electrosurgical instrument
7846158, May 05 2006 TYCO HEALTHCARE GROUP AG; Covidien AG Apparatus and method for electrode thermosurgery
7846161, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Insulating boot for electrosurgical forceps
7857812, Jun 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider having elongated knife stroke and safety for cutting mechanism
7877852, Sep 20 2007 Covidien LP Method of manufacturing an end effector assembly for sealing tissue
7877853, Sep 20 2007 Covidien LP Method of manufacturing end effector assembly for sealing tissue
7879035, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Insulating boot for electrosurgical forceps
7887535, Oct 18 1999 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing wave jaw
7887536, Oct 23 1998 Covidien AG Vessel sealing instrument
7896878, Oct 23 1998 Covidien AG Vessel sealing instrument
7909823, Jan 14 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing instrument
7922718, Nov 19 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Open vessel sealing instrument with cutting mechanism
7922953, Sep 30 2005 TYCO HEALTHCARE GROUP AG; Covidien AG Method for manufacturing an end effector assembly
7931649, Oct 04 2002 Covidien AG Vessel sealing instrument with electrical cutting mechanism
7935052, Feb 14 2007 TYCO HEALTHCARE GROUP AG; Covidien AG Forceps with spring loaded end effector assembly
7947041, Oct 23 1998 Covidien AG Vessel sealing instrument
7951149, Oct 17 2006 Covidien LP Ablative material for use with tissue treatment device
7951150, Jan 14 2005 Covidien AG Vessel sealer and divider with rotating sealer and cutter
7955332, Oct 08 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Mechanism for dividing tissue in a hemostat-style instrument
7963965, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Bipolar electrosurgical instrument for sealing vessels
8016827, Oct 09 2008 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
8034052, May 05 2006 Covidien AG Apparatus and method for electrode thermosurgery
8070746, Oct 03 2006 Covidien LP Radiofrequency fusion of cardiac tissue
8123743, Oct 08 2004 TYCO HEALTHCARE GROUP AG; Covidien AG Mechanism for dividing tissue in a hemostat-style instrument
8123746, Apr 28 2003 Olympus Corporation High-frequency current treatment tool
8128624, May 30 2006 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical instrument that directs energy delivery and protects adjacent tissue
8133224, Oct 05 2006 ERBE ELEKTROMEDIZIN GMBH Medical instrument
8142473, Oct 03 2008 Covidien LP Method of transferring rotational motion in an articulating surgical instrument
8142474, Oct 05 2006 ERBE ELEKTROMEDIZIN GMBH Tubular shaft instrument
8147489, Jan 14 2005 Covidien AG Open vessel sealing instrument
8162973, Aug 15 2008 Covidien LP Method of transferring pressure in an articulating surgical instrument
8192433, Oct 04 2002 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument with electrical cutting mechanism
8197479, Dec 10 2008 Covidien LP Vessel sealer and divider
8197633, Sep 30 2005 Covidien AG Method for manufacturing an end effector assembly
8211105, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical instrument which reduces collateral damage to adjacent tissue
8221416, Sep 28 2007 Covidien LP Insulating boot for electrosurgical forceps with thermoplastic clevis
8235992, Sep 28 2007 Covidien LP Insulating boot with mechanical reinforcement for electrosurgical forceps
8235993, Sep 28 2007 Covidien LP Insulating boot for electrosurgical forceps with exohinged structure
8236025, Sep 28 2007 Covidien LP Silicone insulated electrosurgical forceps
8241282, Jan 24 2006 Covidien LP Vessel sealing cutting assemblies
8241283, Sep 17 2008 Covidien LP Dual durometer insulating boot for electrosurgical forceps
8241284, Apr 06 2001 Covidien AG Vessel sealer and divider with non-conductive stop members
8251996, Sep 28 2007 Covidien LP Insulating sheath for electrosurgical forceps
8257352, Nov 17 2003 Covidien AG Bipolar forceps having monopolar extension
8257387, Aug 15 2008 Covidien LP Method of transferring pressure in an articulating surgical instrument
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8267936, Sep 28 2007 Covidien LP Insulating mechanically-interfaced adhesive for electrosurgical forceps
8277447, Aug 19 2005 Covidien AG Single action tissue sealer
8298228, Nov 12 1997 TYCO HEALTHCARE GROUP AG; Covidien AG Electrosurgical instrument which reduces collateral damage to adjacent tissue
8298232, Jan 24 2006 Covidien LP Endoscopic vessel sealer and divider for large tissue structures
8303582, Sep 15 2008 Covidien LP Electrosurgical instrument having a coated electrode utilizing an atomic layer deposition technique
8303586, Nov 19 2003 Covidien AG Spring loaded reciprocating tissue cutting mechanism in a forceps-style electrosurgical instrument
8317787, Aug 28 2008 Covidien LP Tissue fusion jaw angle improvement
8333765, Oct 04 2002 Covidien AG Vessel sealing instrument with electrical cutting mechanism
8348948, Mar 02 2004 Covidien AG Vessel sealing system using capacitive RF dielectric heating
8361071, Oct 22 1999 Covidien AG Vessel sealing forceps with disposable electrodes
8361072, Sep 30 2005 Covidien AG Insulating boot for electrosurgical forceps
8366709, Sep 21 2004 Covidien AG Articulating bipolar electrosurgical instrument
8382754, Mar 31 2005 Covidien AG Electrosurgical forceps with slow closure sealing plates and method of sealing tissue
8394095, Sep 30 2005 Covidien AG Insulating boot for electrosurgical forceps
8394096, Nov 19 2003 Covidien AG Open vessel sealing instrument with cutting mechanism
8425504, Oct 03 2006 Covidien LP Radiofrequency fusion of cardiac tissue
8454602, May 07 2009 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
8469956, Jul 21 2008 Covidien LP Variable resistor jaw
8469957, Oct 07 2008 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
8486107, Oct 20 2008 Covidien LP Method of sealing tissue using radiofrequency energy
8496656, May 15 2003 Covidien AG Tissue sealer with non-conductive variable stop members and method of sealing tissue
8523898, Jul 08 2009 Covidien LP Endoscopic electrosurgical jaws with offset knife
8535312, Sep 25 2008 Covidien LP Apparatus, system and method for performing an electrosurgical procedure
8540711, Apr 06 2001 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider
8551088, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
8551091, Oct 04 2002 Covidien AG Vessel sealing instrument with electrical cutting mechanism
8562598, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
8568411, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
8568444, Oct 03 2008 Covidien LP Method of transferring rotational motion in an articulating surgical instrument
8579894, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
8591506, Oct 23 1998 Covidien AG Vessel sealing system
8597296, Nov 17 2003 Covidien AG Bipolar forceps having monopolar extension
8597297, Aug 29 2006 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing instrument with multiple electrode configurations
8623017, Nov 19 2003 Covidien AG Open vessel sealing instrument with hourglass cutting mechanism and overratchet safety
8623276, Feb 15 2008 Covidien LP Method and system for sterilizing an electrosurgical instrument
8636761, Oct 09 2008 Covidien LP Apparatus, system, and method for performing an endoscopic electrosurgical procedure
8641713, Sep 30 2005 Covidien AG Flexible endoscopic catheter with ligasure
8647341, Jun 13 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealer and divider for use with small trocars and cannulas
8663270, Jul 23 2010 Conmed Corporation Jaw movement mechanism and method for a surgical tool
8668689, Sep 30 2005 Covidien AG In-line vessel sealer and divider
8679114, May 01 2003 Covidien AG Incorporating rapid cooling in tissue fusion heating processes
8696667, Sep 28 2007 Covidien LP Dual durometer insulating boot for electrosurgical forceps
8734443, Jan 24 2006 Covidien LP Vessel sealer and divider for large tissue structures
8740901, Oct 04 2002 Covidien AG Vessel sealing instrument with electrical cutting mechanism
8764748, Feb 06 2008 Covidien LP End effector assembly for electrosurgical device and method for making the same
8784417, Aug 28 2008 Covidien LP Tissue fusion jaw angle improvement
8795274, Aug 28 2008 Covidien LP Tissue fusion jaw angle improvement
8852228, Jan 13 2009 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
8858554, May 07 2009 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
8882766, Jan 24 2006 Covidien AG Method and system for controlling delivery of energy to divide tissue
8898888, Sep 28 2009 Covidien LP System for manufacturing electrosurgical seal plates
8915910, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
8939973, Aug 19 2005 Covidien AG Single action tissue sealer
8945125, Nov 13 2003 Covidien AG Compressible jaw configuration with bipolar RF output electrodes for soft tissue fusion
8945126, Aug 19 2005 Covidien AG Single action tissue sealer
8945127, Aug 19 2005 Covidien AG Single action tissue sealer
8968309, Nov 10 2011 Covidien LP Surgical forceps
8968314, Sep 25 2008 Covidien LP Apparatus, system and method for performing an electrosurgical procedure
9023043, Sep 28 2007 Covidien LP Insulating mechanically-interfaced boot and jaws for electrosurgical forceps
9028493, Sep 18 2009 Covidien LP In vivo attachable and detachable end effector assembly and laparoscopic surgical instrument and methods therefor
9095347, Nov 20 2003 TYCO HEALTHCARE GROUP AG; Covidien AG Electrically conductive/insulative over shoe for tissue fusion
9107672, Oct 23 1998 TYCO HEALTHCARE GROUP AG; Covidien AG Vessel sealing forceps with disposable electrodes
9113898, Oct 09 2008 Covidien LP Apparatus, system, and method for performing an electrosurgical procedure
9113903, Jan 24 2006 Covidien LP Endoscopic vessel sealer and divider for large tissue structures
9113905, Jul 21 2008 Covidien LP Variable resistor jaw
9113940, Jan 14 2011 Covidien LP Trigger lockout and kickback mechanism for surgical instruments
9149323, May 01 2003 Covidien AG Method of fusing biomaterials with radiofrequency energy
9168088, Nov 10 2011 Covidien LP Surgical forceps
9198717, Aug 19 2005 Covidien AG Single action tissue sealer
9247988, Jul 21 2008 Covidien LP Variable resistor jaw
9320563, Oct 01 2010 Applied Medical Resources Corporation Electrosurgical instruments and connections thereto
9345535, May 07 2009 Covidien LP Apparatus, system and method for performing an electrosurgical procedure
9375245, Nov 10 2011 Covidien LP Surgical forceps
9375254, Sep 25 2008 Covidien LP Seal and separate algorithm
9375270, Oct 23 1998 Covidien AG Vessel sealing system
9375271, Oct 23 1998 Covidien AG Vessel sealing system
9427246, Jul 13 2011 KARL STORZ SE & CO KG Medical cutting instrument for cutting muscles and tendons
9463067, Oct 23 1998 Covidien AG Vessel sealing system
9492225, Jun 13 2003 Covidien AG Vessel sealer and divider for use with small trocars and cannulas
9539053, Jan 24 2006 Covidien LP Vessel sealer and divider for large tissue structures
9549775, Sep 30 2005 Covidien AG In-line vessel sealer and divider
9554841, Sep 28 2007 Covidien LP Dual durometer insulating boot for electrosurgical forceps
9566108, Mar 31 2008 Applied Medical Resources Corporation Electrosurgical system
9585716, Oct 04 2002 Covidien AG Vessel sealing instrument with electrical cutting mechanism
9603652, Aug 21 2008 Covidien LP Electrosurgical instrument including a sensor
9655674, Jan 13 2009 Covidien LP Apparatus, system and method for performing an electrosurgical procedure
9737357, Apr 06 2001 Covidien AG Vessel sealer and divider
9848938, Nov 13 2003 Covidien AG Compressible jaw configuration with bipolar RF output electrodes for soft tissue fusion
9861430, Apr 06 2001 Covidien AG Vessel sealer and divider
9918782, Jan 24 2006 Covidien LP Endoscopic vessel sealer and divider for large tissue structures
9931131, Sep 18 2009 Covidien LP In vivo attachable and detachable end effector assembly and laparoscopic surgical instrument and methods therefor
9962222, Oct 01 2010 Applied Medical Resources Corporation Electrosurgical instruments and connections thereto
9980770, Nov 20 2003 Covidien AG Electrically conductive/insulative over-shoe for tissue fusion
9987078, Jul 22 2015 Covidien LP Surgical forceps
D424694, Oct 23 1998 VALLEYLAB, INC Forceps
D425201, Oct 23 1998 Covidien AG; TYCO HEALTHCARE GROUP AG Disposable electrode assembly
D449886, Oct 23 1998 Sherwood Services AG Forceps with disposable electrode
D457958, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer and divider
D457959, Apr 06 2001 Covidien AG; TYCO HEALTHCARE GROUP AG Vessel sealer
D499181, May 15 2003 Covidien AG; TYCO HEALTHCARE GROUP AG Handle for a vessel sealer and divider
D525361, Oct 06 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Hemostat style elongated dissecting and dividing instrument
D531311, Oct 06 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Pistol grip style elongated dissecting and dividing instrument
D533942, Jun 30 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Open vessel sealer with mechanical cutter
D535027, Oct 06 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Low profile vessel sealing and cutting mechanism
D541418, Oct 06 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Lung sealing device
D541938, Apr 09 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Open vessel sealer with mechanical cutter
D564662, Oct 13 2004 Covidien AG; TYCO HEALTHCARE GROUP AG Hourglass-shaped knife for electrosurgical forceps
D567943, Oct 08 2004 Sherwood Services AG Over-ratchet safety for a vessel sealing instrument
D575395, Feb 15 2007 Covidien LP Hemostat style elongated dissecting and dividing instrument
D575401, Jun 12 2007 Covidien LP Vessel sealer
D649249, Feb 15 2007 Covidien LP End effectors of an elongated dissecting and dividing instrument
D680220, Jan 12 2012 Covidien LP Slider handle for laparoscopic device
D748259, Dec 29 2014 Applied Medical Resources Corporation Electrosurgical instrument
D956973, Jun 13 2003 Covidien AG Movable handle for endoscopic vessel sealer and divider
RE44834, Sep 30 2005 Covidien AG Insulating boot for electrosurgical forceps
RE47375, May 15 2003 Coviden AG Tissue sealer with non-conductive variable stop members and method of sealing tissue
Patent Priority Assignee Title
2605543,
4122856, Oct 08 1976 CAWOOD FAMILY LIMITED PARTNERSHIP, THE Surgical instrument and method of assembly thereof
4165745, May 06 1977 HEIFETZ, LAURENCE JAY, DR Surgical manipulator
4545374, Sep 03 1982 Method and instruments for performing a percutaneous lumbar diskectomy
4696107, Sep 07 1984 Wolf-Gerate GmbH Pruning shears
4712545, Apr 05 1984 Smith & Nephew, Inc Surgical instrument
4763669, Jan 09 1986 Surgical instrument with adjustable angle of operation
4887612, Apr 27 1988 C R BARD, INC Endoscopic biopsy forceps
4896678, Dec 12 1986 Olympus Optical Co., Ltd. Endoscopic treating tool
5152780, May 31 1990 SYMMETRY MEDICAL USA, INC Micro-instrument
5171256, May 10 1990 Symbiosis Corporation Single acting disposable laparoscopic scissors
518600,
5201759, Apr 29 1991 Laparoscopic instrument
5219354, Oct 09 1990 Dissecting-cum haemostapling scissors
5254129, Nov 22 1991 Arthroscopic resector
AT50053,
DE245402,
DE2904115,
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Sep 03 1993BASILE, PETER APA Consulting GroupASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS 0067010738 pdf
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